bioRxiv Science⌕ Search

Biology subjects

Razquin, J.

Publications and source records attributed to Razquin, J..

4 recordsLinked to original sources

Locus Coeruleus alpha-Synuclein Overexpression Induces Prodromal Parkinsonian Features in Mice

The locus coeruleus is one of the first brain regions to develop -synuclein pathology during the prodromal phase of Parkinsons Disease, contributing significantly to non-motor symptoms such as cognitive decline, mood alterations or sleep disturbances. However, the precise role of the locus coeruleus in the early stages of the disease remains unclear. To address this, we developed and characterized a novel mouse model based on the PRSx8-driven overexpression of human -synuclein in noradrenergic neurons of the locus coeruleus using an adeno-associated viral vector. Animals were assessed at 1 and 3 months post-injection using an integrated battery of histological, behavioural, neurochemical, and electrophysiological analyses. We observed robust accumulation of phosphorylated -synuclein in the locus coeruleus, along with widespread propagation to projection areas, including the hippocampus, prefrontal cortex, and dorsal raphe. Despite the absence of neuronal loss in the locus coeruleus, we identified reduced noradrenergic axonal integrity and marked decreases in both noradrenaline and serotonin levels, highlighting a disruption of neurochemical balance at an early stage. The electrophysiological data revealed transient alterations in the excitability and intrinsic properties of locus coeruleus neurons in a sex-dependent manner, suggesting that -synuclein pathology induces early functional disruption prior to overt neurodegeneration. Behavioural outcomes demonstrated selective cognitive deficits and mild anxiety-like behaviours, while other non-motor functions remained preserved. Importantly, although several pathological and functional alterations were evident in the initial phases, behavioural impairments were also maintained at later time points, indicating that locus coeruleus-driven pathology exerts long-lasting consequences. Interestingly, female mice exhibited colon shortening, providing evidence of a sex-specific pathological process at the level of the gut-brain axis. We believe that this model accurately replicates key prodromal features of Parkinsons disease, demonstrating that -synuclein-induced pathology in the locus coeruleus leads to functional circuit impairment and cognitive decline. Our findings emphasize the locus coeruleus as a critical site of early vulnerability in Parkinsons Disease and underscore the importance of sex as a biological variable influencing disease progression and therapeutic response.

neuroscience↗

Characterization of the Lipidome of Neurons in Mouse Brain Nuclei using Imaging Mass Spectrometry

Understanding the molecular composition of the brain at cellular level is essential for deciphering the metabolic alterations associated with brain diseases. Furthermore, the different prevalence of some neurological diseases between males and females highlight the importance of incorporating gender factor in such studies. Here, we demonstrate that using imaging mass spectrometry in negative polarity it is possible to isolate and characterize the lipidome of specific neuronal populations in the mouse brain, including the locus coeruleus (LC), mesencephalic neurons and the substantia nigra pars compacta (SNc). Neuronal identity was validated through immunofluorescence on adjacent serial sections. Comparative analysis revealed that each neuronal population presents a distinct and well-defined lipidic profile, with differences extending across all lipid classes analyzed. Regarding sex-based differences, we found discrete differences in phosphatidylcholine/phosphatidylethanolamine-ether, phosphatidylinositol and sphingomyelin LC neurons. Lipidomic differences were more pronounced in mesencephalic neurons, whereas no significant sex-defendant differences were observed in SNc lipid composition. These findings lay the groundwork for future studies aimed at identifying lipid metabolic dysregulations in the context of neurodegenerative diseases.

neuroscience↗

Sex differences in the impact of nerve injury on Locus Coeruleus function and behaviour in mice

Chronic pain often coexists with stress-related disorders such as anxiety and depression, with a higher prevalence in women. Rodent studies reveal significant sex differences in pain and stress-related behaviours, emphasising the need to explore underlying neurobiological mechanisms. The locus coeruleus (LC), the main noradrenergic nucleus in the brainstem, plays a crucial role in modulating pain and stress responses and exhibits sex-specific characteristics. In this study, we investigated the effects of neuropathic pain on the LC in male and female mice, focusing on sensory thresholds, emotional states, and cognitive function. Nerve injury caused immediate sensory hypersensitivity in both sexes, while depressive-like behaviours and cognitive impairments emerged only after prolonged injury. Interestingly, anxiety-like behaviours and heightened fear conditioning were exclusive to males, which correlated with specific structural and functional changes in the male LC, such as increased noradrenergic cell counts, larger somato-dendritic volume, and greater neuron excitability. In females, however, neuronal excitability was reduced. Chemogenetic inhibition of LC neurons alleviated depressive- and anxiety-like behaviours, as well as fear conditioning, but only in males. Overall, neuropathic pain induces distinct behavioural and neurobiological responses in males and females, challenging traditional views on female vulnerability to pain-induced anxiety and highlighting the need for sex-specific LC-targeted therapies.

neuroscience↗

Diversity of ancestral brainstem noradrenergic neurons across species and multiple biological factors

The brainstem cell group, locus coeruleus (LC), is present across vertebrates and influences cardiorespiratory, metabolic, immune, and cognitive functions by activating in two putatively distinct firing patterns. Yet, the degree to which the LC firing rates and patterns are homogenous across species has never been assessed due to inherently limited sample sizes. To remedy this, we pooled cross-species data from 20 laboratories to show that firing rates differ across species and are modulated by sex, age, and type of in vitro or in vivo preparation. Contrary to the prevailing dual-mode firing pattern schema, we observed patterns spread across a low-dimensional manifold, with subregions enriched for specific biological factors and neurodegenerative disease models. Our findings show considerable diversity in an ancestral vertebrate neuromodulatory system.

neuroscience↗